Ultrasound shear wave simulation of wave propagation at oblique angles.

Q3 Biochemistry, Genetics and Molecular Biology Australasian Physical & Engineering Sciences in Medicine Pub Date : 2019-09-01 Epub Date: 2019-03-15 DOI:10.1007/s13246-019-00748-3
Dae Woo Park, Hyun-Chong Cho
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引用次数: 3

Abstract

Shear wave elasticity imaging (SWEI) has been used to measure the local tissue elasticity. The local tissue shear modulus can be reconstructed from the displacement field of shear waves using an algebraic Helmholtz inversion (AHI) equation or a time-of-flight (TOF)-based algorithm. The shear waves, which are generated by successive focusing of ultrasonic beams at different depths, propagate at oblique angles rather than along the lateral position. The wave propagation at oblique angles can result in bias in shear modulus reconstruction using the AHI equation or the TOF-based algorithm. In this study, the effect of wave propagation at oblique angles on the tissue shear modulus reconstruction was investigated using in silico finite element (FE) simulation. An FE elastic tissue with a hard inclusion model was designed. The shear waves with propagation angles of 0°, 5°, and 10° were applied to the model. The shear modulus and the percentage error in the model were computed using the AHI equation and the TOF-based algorithm at each propagation angle from 0° to 10°. For the AHI equation, the percentage error was 0% at propagation angles of 0° and 5°, and 1% at a propagation angle of 10° in the inclusion. In the surrounding tissue, the percentage error was 0% at propagation angles of 0°, 5°, and 10°. For the TOF-based algorithm, the percentage error was 0% at propagation angles of 0° and 5°, and 40% at a propagation angle of 10° in the inclusion. In the surrounding tissue, the percentage error was 0% at propagation angles of 0° and 5°, and 35% at a propagation angle of 10° in the inclusion. Therefore, whereas the TOF-based algorithm produced critical bias in shear modulus reconstruction by the shear wave propagation at oblique angles, the AHI equation was not affected by the propagation.

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超声剪切波在斜角下的传播模拟。
横波弹性成像(SWEI)已被用于测量局部组织弹性。局部组织剪切模量可以利用代数亥姆霍兹反演(AHI)方程或基于飞行时间(TOF)的算法从剪切波的位移场中重建。超声波束在不同深度连续聚焦产生的剪切波以斜角度传播,而不是沿横向位置传播。在使用AHI方程或基于tof的算法重建剪切模量时,波浪以斜角传播会导致偏差。本文采用硅有限元模拟方法,研究了斜角波传播对组织剪切模量重建的影响。设计了一种具有硬包裹体模型的FE弹性组织。将传播角分别为0°、5°和10°的横波应用于模型。利用AHI方程和基于tof的算法计算模型在0°~ 10°的各个传播角下的剪切模量和百分比误差。对于AHI方程,在包体中传播角为0°和5°时,百分比误差为0%,在传播角为10°时,百分比误差为1%。在周围组织中,在0°、5°和10°传播角度下,百分比误差为0%。对于基于tof的算法,在包涵体中传播角为0°和5°时,百分比误差为0%,传播角为10°时,百分比误差为40%。在包涵体周围组织中,0°和5°传播角时的百分比误差为0%,10°传播角时的百分比误差为35%。因此,尽管基于tof的算法在斜角剪切波传播重建剪切模量时会产生临界偏差,但AHI方程不受传播的影响。
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来源期刊
CiteScore
2.00
自引率
0.00%
发文量
0
审稿时长
6-12 weeks
期刊介绍: Australasian Physical & Engineering Sciences in Medicine (APESM) is a multidisciplinary forum for information and research on the application of physics and engineering to medicine and human physiology. APESM covers a broad range of topics that include but is not limited to: - Medical physics in radiotherapy - Medical physics in diagnostic radiology - Medical physics in nuclear medicine - Mathematical modelling applied to medicine and human biology - Clinical biomedical engineering - Feature extraction, classification of EEG, ECG, EMG, EOG, and other biomedical signals; - Medical imaging - contributions to new and improved methods; - Modelling of physiological systems - Image processing to extract information from images, e.g. fMRI, CT, etc.; - Biomechanics, especially with applications to orthopaedics. - Nanotechnology in medicine APESM offers original reviews, scientific papers, scientific notes, technical papers, educational notes, book reviews and letters to the editor. APESM is the journal of the Australasian College of Physical Scientists and Engineers in Medicine, and also the official journal of the College of Biomedical Engineers, Engineers Australia and the Asia-Oceania Federation of Organizations for Medical Physics.
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Acknowledgment of Reviewers for Volume 35 Acknowledgment of Reviewers for Volume 34 A comparison between EPSON V700 and EPSON V800 scanners for film dosimetry. Nanodosimetric understanding to the dependence of the relationship between dose-averaged lineal energy on nanoscale and LET on ion species. EPSM 2019, Engineering and Physical Sciences in Medicine : 28-30 October 2019, Perth, Australia.
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